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A Solvent-Resistant and Biocompatible Self-Healing Supramolecular Elastomer with Tunable Mechanical Properties

机译:具有可调谐机械性能的耐溶剂和生物相容性的自愈式超分子弹性体

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The purpose of this work is to demonstrate a new design strategy to produce a self-healing supramolecular elastomer with solvent resistance and biocompatibility and tunable mechanical properties. This aim is successfully achieved by synthesizing a lignin-based supramolecular elastomer (LSE) through branching amide molecular chains on the lignin. The use of lignin effectively reduces the glass transition temperature and the degree of crystallinity of LSEs and generates urea-modified hydrogen bond groups to obtain self-healing capability. The synthesized LSEs behave as rubber and exhibit spontaneous self-healing behavior at room temperature without external stimuli. The mechanical and self-healing properties are closely related to the content of lignin. The elongation at break of the LSE-3 is 172% and tensile strength is 1.12 MPa, and achieves full recovery after a healing time of 48 h. The LSE material demonstrates insolubility in common polar solvents and is essentially noncytotoxic and potentially biocompatible for biomedical applications.
机译:这项工作的目的是展示一种新的设计策略,用于生产具有耐溶剂和生物相容性和可调谐机械性能的自愈性超分子弹性体。通过在木质素上通过分支酰胺分子链合成基于木质素的超分子弹性体(LSE)来成功实现该目的。木质素的使用有效降低了LSE的玻璃化转变温度和结晶度,并产生尿素改性的氢键基团以获得自愈合能力。合成的LSE表现为橡胶,在室温下表现出自愈合的自愈行为,没有外部刺激。机械和自我愈合性质与木质素的含量密切相关。突破的LSE-3处的伸长率为172%,拉伸强度为1.12MPa,并在48小时的愈合时间后达到全面恢复。 LSE材料证明了普通极性溶剂中的不溶性,并且基本上是非胞素毒性的,并且是生物医学应用的潜在生物相容性。

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